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Naoaki Shinzawa

Publications and source records attributed to Naoaki Shinzawa.

2 recordsLinked to original sources

Versatile, marker-free platform for life cycle-wide imaging of Plasmodium falciparum by integrating an exogenous gene cassette into a conserved intergenic locus.

The creation of transgenic Plasmodium falciparum lines with robust fluorescence across the entire life cycle is essential for advancing our understanding of parasite biology, which in turn informs the development of new drugs and vaccines. In this study, we utilized Plasmodium-optimized genome editing to integrate an mCherry expression cassette into a selected intergenic locus without gene disruption. The resulting marker-free line, NF54-mCh, exhibited intense fluorescence throughout all developmental stages, including asexual and sexual blood stages, as well as mosquito (ookinete, oocyst, and sporozoite) and liver stages. NF54-mCh showed normal proliferation, gametocytogenesis, and efficient transmission to mosquitoes. The ultra-high brightness in salivary gland sporozoites allowed for the non-invasive identification of infected mosquitoes. Sporozoites remained highly infectious to humanized mouse livers, thus enabling the completion of the full life cycle. NF54-mCh serves as a parental line for performing additional genetic modifications, because the CRISPR/Cas9-based genome editing method is free of introduced drug resistance markers. The broader applicability of this strategy was validated by generating similar reporter lines in Plasmodium species utilized in rodent malaria models. In summary, NF54-mCh represents a unique, versatile platform that will accelerate fundamental research and support the future development of malaria control strategies, including new vaccines and drugs.

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[The fruit fly as a tractable model animal for infectious diseases: implication for understanding of host-pathogen interaction].

Use of invertebrate models of infection has given exciting insights into host-pathogen interaction for a number of bacteria. In particular, this has revealed important factors of the host response with remarkable parallels in higher organisms. Recently, emerging of multi-drug resistant bacteria raises a requirement of developing new therapies such as controlling host defense system. Finding host factors that can purge bacteria from human body could give us a new concept of pharmaceutical targets. For this purpose, fruit flies, Drosophila melanogaster, has been used as a model animal for human infectious diseases and became a tractable tool for identifying novel gene products that can activate host defense mechanisms. In this review we will discuss about recent progress of Drosophila model of pathogen infection, which could imply a useful genetically tractable model for human infectious diseases.

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